The invention relates to a vehicle roof of a convertible, with a front roof part and a rear roof part which contains a rear window and is coupled to the vehicle body, the roof parts being connected to each other in an articulated manner and being displaceable between a closed position over the vehicle interior and a put-away position at the rear, wherein the rear window, which is mounted pivotably on the rear roof part, is connected at its front edge to the front roof part by means of a control link of a control kinematics, which control link is mounted pivotably on the front roof part, and, in the put-away position, said rear window takes up a position in which it is raised in relation to the rear roof part.
DE 199 36 252 C2 has disclosed a vehicle roof in which, during the putting away of the roof, the rear window is displaced continuously in relation to the rear roof part by means of a kinematic positive control means. The kinematic positive control means is produced via a displacement mechanism which has, for example, a four-bar linkage and a control lever which is connected thereto and acts on a lateral central section of the rear window. By means of said control lever, when the roof is closed, the rear window is held in its closed position on the rear roof part and, when the roof is put away, is held in a manner raised in relation to the rear roof part.
U.S. Pat. No. 6,866,324 B2 has disclosed a vehicle roof which, according to a first exemplary embodiment, is formed in a manner corresponding to that in DE 199 36 252 C2 mentioned above and pivots the rear window relative to the C pillars by means of a control lever which connects the front link of the four-bar linkage, which supports the roof, to the rear window. According to a second exemplary embodiment of the vehicle roof, a respective link is coupled pivotably in respective joints firstly to the front edge of the rear window and secondly to the rear edge of the roof shell of the front roof part. The link controls the relative movement of the front edge of the rear window in relation to the lateral C pillars and, when the roof is put away, raises the front edge of the rear window in relation to the lateral C pillars.
DE 198 07 490 C1 discloses a convertible hard top vehicle roof with a front roof part and a rear roof part, which roof parts can be pivoted about a vehicle-mounted main axis of rotation in order to put away the roof into a put-away space at the rear. A rear window is mounted on the rear roof part in a manner such that it can pivot in relation to the lateral C pillars of the rear roof part about a pivot bearing axis on the lower edge side. A dragging lever is coupled firstly to a coupling point in the rear region of the rear window and secondly to a joint mounted on the vehicle body in such a manner that, when the rear roof part is put away, the rear window is pivoted in relation to the lateral C pillars by means of the dragging lever into a raised put-away position.
In the case of the vehicle roof known from DE 199 32 503 A1, the rear window, which is mounted pivotably on the rear roof part, can be pivoted by means of its own drive in relation to the rear roof part.
The invention is based on the object of providing a vehicle roof mentioned at the beginning, in which the connection of the rear window to the front roof part and the control of its movement are improved.
According to the invention, the object is achieved in the case of the abovementioned vehicle roof in that a pivot bearing part of the control kinematics, said pivot bearing part being mounted on the front side of the rear window, is held displaceably on a guide of the control link. The displaceable mounting of the pivot bearing part on the control link enables execution of compensating movements which permit an improved movement behavior of the control kinematics and of the rear window as the roof is being put away.
Advantageous refinements of the invention are indicated in the subclaims.
The rear roof part preferably contains lateral C pillars, and the rear window is mounted in a manner such that it can pivot relative to the C pillars about a pivot axis arranged at its rear edge. Each of the two C pillars is then attached to a rear link of a four-bar linkage supporting the roof in a movable manner.
A stop for limiting the pivoting travel of the control link is expediently provided such that, in particular when the roof is closed, the rear window is arranged in a defined closed position via the control link bearing against the stop.
For an improved movement behavior, it can be provided that the pivot bearing part, which is formed, for example, as a bolt which is attached to the rear window or to a frame of the rear window, is guided displaceably on the guide between an inner position, which is adjacent to the pivot axis of the control link, and an outer position.
According to a preferred design, when the roof is closed and in a first pivoted position of the control link, the pivot bearing part is arranged in the outer position by means of a control part.
If, when the roof is opened, the pivot bearing part changes its pivoted position relative to the control link and, in the process, the control part takes up an inactive position, the pivot bearing part can execute a compensating movement along the guide of the control link.
A support is preferably provided on the vehicle body, said support supporting the rear window during the opening of the roof before the put-away position of the rear roof part and of the C pillars is reached. Then, over the course of the final movement during the opening of the roof, the rear window, which rests on the support, uses the pivot bearing part to pivot the pivoted-out control link back into its first pivoted position against the stop while the rear roof part and the C pillars drop into their put-away position relative to the rear window. The rear window is therefore secured in its put-away position in a defined manner.
Finally, over the course of the final movement during the opening of the roof, the pivot bearing part can execute a longitudinal movement on the guide into the outer position.
According to a preferred design, the control part is formed as a control cam which is connected in a rotationally fixed manner to the pivot bearing part and is supported on a supporting surface formed on the control link.
If, owing to the design of the control and bearing mechanism, during the putting away of the roof, the rear window executes a relative movement in relation to the support, it is advantageous if the at least one support contains a roller on which the rear window rests. The roller permits a simple compensating movement, and therefore the rear window does not have to slide on a fixed support.
A respective support preferably supports the rear window on its opposite side edges, in particular in the vicinity of its upper edge. The region below the rear window therefore remains unobstructed for loading purposes.
The roof is, in particular, a hard top roof of a vehicle, but it may also be formed as a soft top or have soft top elements.
The vehicle roof is explained in more detail below using an exemplary embodiment and with reference to the drawing, in which:
A hard top roof 1 of a vehicle contains a front roof part 2 and a rear roof part 3, which roof parts can be displaced between a closed position (
The roof 1 is mounted movably on the vehicle body by means of a bearing device in the form, for example, of a four-bar linkage which has a front link 4 and a rear link 5, which links, firstly, are mounted on a main bearing 6 mounted on the vehicle body in a manner such that they can pivot in pivot axes 7 and 8 and, secondly, are coupled to a support part 9 in a manner such that they can pivot in pivot axes 10 and 11. The in particular hard-shell front roof part 2 is fastened to the support part 9.
The rear roof part 3 laterally contains a respective C pillar 12 attached to the rear link 5. The two opposite C pillars 12 are connected directly to each other only at their lower edge by means of a transverse part 13, for example a frame which can also be fastened to the respective rear link 5. A rear window 14 is arranged in the opening between the two C pillars 12, said rear window being mounted at its lower or rear edge 15 on the transverse part 13 in a manner such that it can pivot about a pivot axis 16 and in relation to the two C pillars 12. At least at its upper edge, the rear window 14 contains a window frame 17 to which a respective mount 18 is laterally fastened by a forwardly projecting arm 19 to which a laterally protruding bearing bolt 20 is attached, the bearing bolt being part of a control kinematics for controlling the movement of the rear window 14 relative to the C pillars 12. The bearing bolt 20 is held displaceably in an elongated hole 21 which is formed on a control link 22 which is mounted on the support part 9 of the front roof part 2 in a manner such that it can pivot about a pivot axis 23.
The front end of the arm 19 of the mounting 18 contains a control cam 24 (see in particular
When the roof 1 is closed (see
In order to open the roof, a respective lateral hydraulic cylinder 28 arranged on the main bearing 6 is actuated and extended and, via an intermediate mechanism, pivots the rear link 5 and therefore the rear roof part 3 to the rear (
During further opening of the roof (see
Shortly before the put-away position of the roof 2 is reached, the rear window is placed on a support 29 on the vehicle body, for example on a respective lateral supporting roller which is mounted on a mounting 30 and supports the rear window 14, in particular on its side edge, in the vicinity of the upper edge (
As the roof 2 continues to be put away, the C pillars 12 move downward into their final put-away position while, via the supported rear window 14 and the arm 19, the bearing bolt 20 executes a compensating movement in the elongated hole 21 in the direction of the outer position and at the same time pivots the control link 22 upward again against the stop 27 (see
In the put-away end position of the roof 2 (see
The support 29 is expediently formed, for example, as a plastic or rubber roller, and therefore the rear window 14 can execute a compensating movement on the roller as it is being put away.
The closing of the put-away roof 2 takes place in an opposite sequence of movement. By means of the respective hydraulic cylinder 28, the rear link 5 is pivoted upward, with the C pillars 12 of the rear roof part 3 being raised and, owing to its weight, the rear window 14 initially still remaining on the respective support 29 or roller. The bearing bolt 20 moves in the elongated hole 21 of the control link 22 and, by means of the pivoting of the arm 19 relative to the control link 22, the control cam 24 comes into engagement again with the supporting surface 25. By means of the relative movement of the C pillars 12 with respect to the front roof part 2 or the support part 9 thereof, the arm 19 pivots in relation to the control link 22 into the starting position and the control cam 24 reaches its maximum lift position on the supporting surface 25 such that the bearing bolt 20 is again arranged in the outer position in the elongated hole 21.
Finally, the driving device or the hydraulic cylinder 28 pivots the roof 1 into the closed position which is shown in
Number | Date | Country | Kind |
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10 2005 055 383.4 | Nov 2005 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/DE2006/002039 | 11/17/2006 | WO | 00 | 5/13/2008 |